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可能增强葡糖基葡糖苷基-β-环糊精/树枝状聚合物缀合物基因转移活性的机制。

Possible enhancing mechanisms for gene transfer activity of glucuronylglucosyl-β-cyclodextrin/dendrimer conjugate.

机构信息

Graduate School of Pharmaceutical Sciences, Kumamoto University, 5-1 Oe-honmachi, Kumamoto 862-0973, Japan.

Faculty of Pharmaceutical Sciences, Sojo University, 4-22-1 Ikeda, Kumamoto 860-0082, Japan.

出版信息

Int J Pharm. 2012 Apr 15;426(1-2):239-247. doi: 10.1016/j.ijpharm.2012.01.039. Epub 2012 Jan 25.

Abstract

We previously reported that glucuronylglucosyl-β-cyclodextrin (GUG-β-CyD) conjugate with polyamidoamine starburst dendrimer (GUG-β-CDE conjugate) with the average degree of substitution (DS) of cyclodextrin (CyD) of 1.8 (GUG-β-CDE conjugate (DS 1.8)), showed remarkably higher gene transfer activity than α-CyD/dendrimer conjugate (α-CDE conjugate (DS 1.2)) and β-CyD/dendrimer conjugate (β-CDE conjugate (DS 1.3)) in vitro and in vivo. In this study, to clarify the enhancing mechanism for high gene transfer activity of GUG-β-CDE conjugate (DS 1.8), we investigated the physicochemical properties, cellular uptake, endosomal escape and nuclear translocation of the plasmid DNA (pDNA) complexes as well as pDNA release from the complexes. The particle size, ζ-potential and cellular uptake of GUG-β-CDE conjugate (DS 1.8)/pDNA complex were mostly comparable to those of α-CDE conjugate (DS 1.2) and β-CDE conjugate (DS 1.3). Meanwhile, GUG-β-CDE conjugate (DS 1.8)/pDNA complex was likely to have high endosomal escaping ability and nuclear localization ability in A549 and RAW264.7 cells. In addition, the pDNA condensation and decondensation abilities of GUG-β-CDE conjugate (DS 1.8) were lower and higher than that of α-CDE conjugate (DS 1.2) or β-CDE conjugate (DS 1.3), respectively. These results suggest that high gene transfer activity of GUG-β-CDE conjugate (DS 1.8) could be, at least in part, attributed to high endosomal escaping ability, nuclear localization ability and suitable pDNA release from its complex.

摘要

我们之前报道过,葡萄糖基-β-环糊精(GUG-β-CyD)与聚酰胺胺星型树枝状大分子(GUG-β-CDE 偶联物)的偶联物,其环糊精(CyD)的平均取代度(DS)为 1.8(GUG-β-CDE 偶联物(DS 1.8)),与α-CyD/树枝状大分子偶联物(α-CDE 偶联物(DS 1.2))和β-CyD/树枝状大分子偶联物(β-CDE 偶联物(DS 1.3))相比,在体外和体内均显示出显著更高的基因转移活性。在这项研究中,为了阐明 GUG-β-CDE 偶联物(DS 1.8)高基因转移活性的增强机制,我们研究了质粒 DNA(pDNA)复合物的物理化学性质、细胞摄取、内涵体逃逸和核转位以及复合物中 pDNA 的释放。GUG-β-CDE 偶联物(DS 1.8)/pDNA 复合物的粒径、ζ-电位和细胞摄取与α-CDE 偶联物(DS 1.2)和β-CDE 偶联物(DS 1.3)的最为相似。同时,GUG-β-CDE 偶联物(DS 1.8)/pDNA 复合物在 A549 和 RAW264.7 细胞中可能具有高内涵体逃逸能力和核定位能力。此外,GUG-β-CDE 偶联物(DS 1.8)的 pDNA 凝聚和解凝聚能力低于或高于α-CDE 偶联物(DS 1.2)或β-CDE 偶联物(DS 1.3),分别。这些结果表明,GUG-β-CDE 偶联物(DS 1.8)的高基因转移活性至少部分归因于高内涵体逃逸能力、核定位能力和其复合物中 pDNA 的适当释放。

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